Mauthner and reticulospinal responses to the onset of acoustic pressure and acceleration stimuli

被引:28
作者
Casagrand, JL [1 ]
Guzik, AL [1 ]
Eaton, RC [1 ]
机构
[1] Univ Colorado, Dept Biol, EPO, Integrat Physiol & Neurobiol Sect, Boulder, CO 80309 USA
关键词
D O I
10.1152/jn.1999.82.3.1422
中图分类号
Q189 [神经科学];
学科分类号
071006 ;
摘要
We determined how the Mauthner cell and other large, fast-conducting reticulospinal neurons of the goldfish responded to acoustic stimuli likely to be important in coordinating body movements underlying escape. The goal was to learn about the neurophysiological responses to these stimuli and the underlying processes of sensorimotor integration. We compared the Intracellularly recorded postsynaptic responses (PSPs) of 9 Mauthner cells and a population of 12 other reticulospinal neurons to acoustic pressure and acceleration stimuli. All recorded cells received both pressure and acceleration inputs and responded to stimuli regardless of initial polarity. Thus these cells receive acoustic components necessary to determine source direction. We observed that the Mauthner cell was broadly tuned to acoustic pressure from too to 2,000 Hz, with a Q(10dB) of 0.5-1.1 over the best frequency range, 400-800 Hz. This broad tuning is probably due to input from S1 afferents and is similar to tuning of the behavioral audiogram. Our data suggest that cells have relatively more sustained responses to acceleration than to pressure stimuli, to which they rapidly adapted. For a given cell, PSP latencies and amplitudes varied inversely with stimulus intensity. For the entire population of cells studied, minimum onset latencies (i.e., those at the highest intensities) ranged from 0.7 to 7.6 ms for acoustic pressure and 0.7 to 9.8 ms for acceleration. This distribution in minimum onset latencies is consistent with earlier EMG and kinematic findings and supports our previous hypothesis that escape trajectory angle is controlled, in part, by varying the activation time of neurons in the escape network. While the Mauthner cell latency did not differ to both onset polarities of pressure and acceleration, this was not hue of all cells, Also, the Mauthner cell responses to pressure were similar to 0.6 ms faster than to acceleration; for the other cells, this difference was 1.1 ms with some cells having differences less than or equal to 3 ms. To both pressure and acceleration, the average, minimum Mauthner cell latency was similar to 1 ms faster than the average of the 12 other cells. These data are consistent with the hypothesis that the Mauthner cell fires first, followed by other reticulospinal neurons, which more finely regulate escape trajectory. Finally, analysis of our results suggests that while pressure is more important in depolarizing the cell near threshold, high levels of acceleration, perhaps from fluid flow, may be very important in activating the system in a directional manner.
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页码:1422 / 1437
页数:16
相关论文
共 71 条
[1]   SOUND AND STARTLE RESPONSES IN HERRING SHOALS [J].
BLAXTER, JHS ;
GRAY, JAB ;
DENTON, EJ .
JOURNAL OF THE MARINE BIOLOGICAL ASSOCIATION OF THE UNITED KINGDOM, 1981, 61 (04) :851-869
[2]  
BLECKMANN H, 1991, J COMP PHYSIOL A, V168, P749
[3]  
BROWN NA, 1995, US SOUND MOD FISH BE
[4]   ACTIVATION OF MAUTHNER NEURONS DURING PREY CAPTURE [J].
CANFIELD, JG ;
ROSE, GJ .
JOURNAL OF COMPARATIVE PHYSIOLOGY A-SENSORY NEURAL AND BEHAVIORAL PHYSIOLOGY, 1993, 172 (05) :611-618
[5]   SWIMBLADDER ACOUSTIC PRESSURE TRANSDUCTION INITIATES MAUTHNER-MEDIATED ESCAPE [J].
CANFIELD, JG ;
EATON, RC .
NATURE, 1990, 347 (6295) :760-762
[6]   Hierarchical sensory guidance of Mauthner-mediated escape responses in goldfish (Carassius auratus) and cichlids (Haplochromis burtoni) [J].
Canfield, JG ;
Rose, GJ .
BRAIN BEHAVIOR AND EVOLUTION, 1996, 48 (03) :137-156
[7]   PROCESSING OF TEMPORAL INFORMATION IN THE BRAIN [J].
CARR, CE .
ANNUAL REVIEW OF NEUROSCIENCE, 1993, 16 :223-243
[8]  
Casagrand J. L., 1997, Society for Neuroscience Abstracts, V23, P180
[9]  
Casagrand J. L., 1995, Society for Neuroscience Abstracts, V21, P399
[10]  
CASAGRAND JL, 1998, 5 INT C NEUR, V5, P245